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Updated: Jul 8, 2026

Analysis of Cell Cycle Position in Mammalian Cells
Published on: January 21, 2012
Human immunodeficiency virus type 1 Vpr induces cell cycle G2 arrest through Srk1/MK2-mediated phosphorylation of
Sylvain Huard1, Robert T Elder, Dong Liang
1Department of Pathology, University of Maryland School of Medicine, 10 South Pine Street, MSTF700A, Baltimore, MD 21201, USA.
Abstract:
Human immunodeficiency virus type 1 (HIV-1) Vpr induces cell cycle G(2) arrest in fission yeast (Schizosaccharomyces pombe) and mammalian cells, suggesting the cellular pathway(s) targeted by Vpr is conserved among eukaryotes. Our previous studies in fission yeast demonstrated that Vpr induces G(2) arrest in part through inhibition of Cdc25, a Cdc2-specific phosphatase that promotes G(2)/M transition. The goal of this study was to further elucidate molecular mechanism underlying the inhibitory effect of Vpr on Cdc25. We show here that, similar to the DNA checkpoint controls, expression of vpr promotes subcellular relocalization of Cdc25 from nuclear to cytoplasm and thereby prevents activation of Cdc2 by Cdc25. Vpr-induced nuclear exclusion of Cdc25 appears to depend on the serine/threonine phosphorylation of Cdc25 and the presence of Rad24/14-3-3 protein, since amino acid substitutions of the nine possible phosphorylation sites of Cdc25 with Ala (9A) or deletion of the rad24 gene abolished nuclear exclusion induced by Vpr. Interestingly, Vpr is still able to promote Cdc25 nuclear export in mutants defective in the checkpoints (rad3 and chk1/cds1), the kinases that are normally required for Cdc25 phosphorylation and nuclear exclusion of Cdc25, suggesting that others kinase(s) might modulate phosphorylation of Cdc25 for the Vpr-induced G(2) arrest. We report here that this kinase is Srk1. Deletion of the srk1 gene blocks the nuclear exclusion of Cdc25 caused by Vpr. Overexpression of srk1 induces cell elongation, an indication of cell cycle G(2) delay, in a similar fashion to Vpr; however, no additive effect of cell elongation was observed when srk1 and vpr were coexpressed, indicating Srk1 and Vpr are likely affecting the cell cycle G(2)/M transition through the same cellular pathway. Immunoprecipitation further shows that Vpr and Srk1 are part of the same protein complex. Consistent with our findings in fission yeast, depletion of the MK2 gene, a human homologue of Srk1, either by small interfering RNA or an MK2 inhibitor suppresses Vpr-induced cell cycle G(2) arrest in mammalian cells. Collectively, our data suggest that Vpr induces cell cycle G(2) arrest at least in part through a Srk1/MK2-mediated mechanism.
Insights
Human immunodeficiency virus type 1 (HIV-1) Vpr protein causes cell cycle arrest by inhibiting Cdc25 phosphatase. This study identifies Srk1 kinase as a key mediator, conserved in human cells via MK2, linking Vpr to cell cycle regulation.
Area of Science:
- Molecular Biology
- Cell Biology
- Virology
Background:
- Human immunodeficiency virus type 1 (HIV-1) Vpr protein is known to induce cell cycle G(2) arrest in eukaryotic cells.
- Previous studies indicated Vpr inhibits Cdc25, a phosphatase crucial for G(2)/M phase transition, contributing to G(2) arrest.
Purpose of the Study:
- To elucidate the precise molecular mechanism by which Vpr inhibits Cdc25 and induces cell cycle G(2) arrest.
- To identify the specific kinase(s) involved in Vpr-mediated Cdc25 regulation and explore conserved pathways in mammalian cells.
Main Methods:
- Utilized fission yeast (Schizosaccharomyces pombe) and mammalian cell models.
- Investigated subcellular localization of Cdc25 in response to Vpr expression.
- Employed genetic manipulation (gene deletion, site-directed mutagenesis) and biochemical assays (immunoprecipitation).
- Used small interfering RNA (siRNA) and kinase inhibitors in mammalian cells.
Main Results:
- Vpr expression promotes the cytoplasmic relocalization of Cdc25, preventing its nuclear function and thereby inhibiting G(2)/M transition.
- Vpr-induced Cdc25 nuclear exclusion is dependent on Cdc25 phosphorylation and 14-3-3 protein binding, but occurs independently of known checkpoint kinases (Rad3, Chk1/Cds1).
- The serine/threonine kinase Srk1 was identified as the kinase responsible for Vpr-mediated Cdc25 phosphorylation and nuclear export.
- Overexpression of Srk1 mimics Vpr-induced cell elongation (G(2) delay), and co-expression shows no additive effect, suggesting a shared pathway.
- Vpr and Srk1 form a protein complex.
- Depletion of the human homolog of Srk1, MK2, suppresses Vpr-induced G(2) arrest in mammalian cells.
Conclusions:
- HIV-1 Vpr induces cell cycle G(2) arrest, at least partly, via a conserved Srk1/MK2-mediated pathway that targets Cdc25 localization.
- This study reveals a novel mechanism of Vpr-induced cell cycle arrest involving a specific kinase cascade conserved across eukaryotes.
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